4.7 Article

Morphology engineering of type-II heterojunction nanoarrays for improved sonophotocatalytic capability

Journal

ULTRASONICS SONOCHEMISTRY
Volume 81, Issue -, Pages -

Publisher

ELSEVIER
DOI: 10.1016/j.ultsonch.2021.105849

Keywords

Sonophotocatalysis; Morphology engineering; Heterojunction; Piezoelectric; Nanoarray

Funding

  1. National Key Research and Devel-opment Program of China [2017YFA0304203]
  2. National Natural Science Foundation of China [61901249, 82001850, 62020106014, 6201153004]
  3. PCSIRT [IRT_17R70]
  4. 111 Project [D18001]
  5. Program for the Outstanding Innovative Teams of Higher Learning Institutions of Shanxi (OIT)
  6. Applied Basic Research Project of Shanxi Province, China [201901D211191, 201901D211188]
  7. Scientific and Technological Innovation Programs of Higher Education Institutions in Shanxi [2019L0002]
  8. Innovation Project of Graduate Education in Shanxi [2021Y157]
  9. Shanxi 1331 KSC

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This study explores the impact of morphology on the sonophotocatalytic capability in heterojunction nanoarrays by synthesizing sulfide ZnO/ZnS core-shell nanorod arrays and etching them into ZnO/ZnS nanotubes. The enhanced capability was successfully achieved by coupling effect of enhanced piezoelectric field and reduced electron-hole pairs recombination, as proven through electron spin resonance test and numerical simulations.
Sonophotocatalysis is one of the most significant outcomes of the exploration of the interaction between piezoelectric field and charge carriers, which exhibits potential applications in dye degradation, water splitting, and sterilization. Although several heterojunction catalysts have been applied to improve the sonophotocatalytic capability, the importance of the morphology on the sonophotocatalytic capability has not been emphasized. In this study, brush-like ZnO nanorod arrays are synthesized on a stainless-steel mesh and subsequently vulcanized into ZnO/ZnS core-shell nanorod arrays to investigate the sonophotocatalytic capability of the heterojunction. The sonophotocatalytic capability increases from 25.1% to 45.4% through vulcanization. Afterward, the ZnO/ZnS nanorods are etched to ZnO/ZnS nanotubes without affecting the crystallography and distribution of the ZnS nanoparticle shell, further improving the capability to 63.3%. The improvement can be ascribed to the coupling effect of the enhanced piezoelectric field and the reduced migration distance, which suppresses the recombination of photoexcited electron-hole pairs while transforming the morphology from nanorod to nanotube, as proven by the electron spin resonance test and numerical simulations. This study explores a novel approach of morphology engineering for enhancing the sonophotocatalytic capability of heterojunction nanoarrays.

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